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Selective Detection of Sub-Atto-Molar Streptavidin in 10~(13) Fold Impure Sample Using Nanoslot Photonic Crystal Nanolaser

机译:纳米缝隙光子晶体纳米激光选择性检测10〜(13)折叠不纯样品中的亚摩尔糖链霉亲和素

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摘要

Biosensors which can selectively detect a very small amount of biomarker protein in human blood are desired toward early diagnoses of severe diseases. However, no methods simultaneously satisfy the requirements such as high sensitivity, high selectivity, simple detection, and immediacy. We succeeded in detecting ultra-low-concentration streptavidin (SA) even in a highly impure sample using nanoslot photonic crystal (PC) nanolasers. This nanolaser consists of GalnAsP semiconductor slab with a periodic airhole array. Since the total device area is no larger than 20 × 20 μm~2, high-throughput fabrication is possible even using e-beam lithography. Moreover, it is easy to operate by photopumping through free-space optics. Since the evanescent wave of the laser mode penetrates from the PC slab, the laser wavelength changes sensitively to the environmental index. In the sensing experiment, we first functionalized the devices with biotin, and then measured the wavelength in ultrapure water before and after immersing in the solutions with various concentrations of SA. As a result, we evaluated that the detection limit of SA is 16 zM. In another experiment, we put 1 μM BSA into the solution as a contaminant, and repeated the same measurement. We detected 100 zM SA even in the impure solution only when biotin is functionalized in advance, meaning a selectivity ratio (BSA / SA) of 10~(13). Thus this device achieves unprecedentedly high sensitivity and selectivity in addition to the simple fabrication and fast sensing. It is very promising as a point of care device for medical diagnoses.
机译:对于早期诊断严重疾病,需要能够选择性地检测人血中非常少量的生物标记蛋白的生物传感器。但是,没有一种方法可以同时满足诸如高灵敏度,高选择性,简单检测和即时性的要求。即使使用纳米槽光子晶体(PC)纳米激光,即使在高度不纯的样品中,我们也能成功检测出超低浓度的链霉亲和素(SA)。该纳米激光由具有周期性气孔阵列的GalnAsP半导体平板组成。由于器件的总面积不大于20×20μm〜2,因此即使使用电子束光刻技术也可以进行高通量制造。而且,通过自由空间光学器件进行光泵抽运很容易。由于激光模式的e逝波从PC平板穿透,因此激光波长对环境指数敏感地变化。在传感实验中,我们首先使用生物素对设备进行功能化,然后在浸入具有不同浓度的SA的溶液之前和之后在超纯水中测量波长。结果,我们估计SA的检出限为16 zM。在另一个实验中,我们将1μMBSA作为污染物放入溶液中,并重复相同的测量。仅当生物素预先功能化时,即使在不纯溶液中,我们也检测到100 zM SA,这意味着选择性比(BSA / SA)为10〜(13)。因此,除了简单的制造和快速的感测之外,该器件还实现了前所未有的高灵敏度和选择性。作为医疗诊断的护理设备,它非常有前途。

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  • 来源
  • 会议地点 San Francisco CA(US)
  • 作者单位

    Department of Electrical and Computer Engineering, Yokohama National University 79-5 Tokiwadai, Hodogaya-ku, Yokohama, 240-8501, Japan;

    Department of Electrical and Computer Engineering, Yokohama National University 79-5 Tokiwadai, Hodogaya-ku, Yokohama, 240-8501, Japan;

    Department of Electrical and Computer Engineering, Yokohama National University 79-5 Tokiwadai, Hodogaya-ku, Yokohama, 240-8501, Japan,Department of Molecular Pharmacology and Neurobiology, Yokohama City University 3-6 Fukuura, Kanazawa-ku, Yokohama, 236-0004, Japan;

    Department of Electrical and Computer Engineering, Yokohama National University 79-5 Tokiwadai, Hodogaya-ku, Yokohama, 240-8501, Japan;

    Department of Electrical and Computer Engineering, Yokohama National University 79-5 Tokiwadai, Hodogaya-ku, Yokohama, 240-8501, Japan;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    photonic crystal nanolaser; nanoslot; bio-sensing; bio-photonics; bio-marker;

    机译:光子晶体纳米激光;纳米狭缝;生物传感;生物光子学;生物标记;

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